Portable small slicing machine

Through the design of clamping transportation mechanism, transmission mechanism, tension mechanism and quick disassembly mechanism, the problems of small slicer tail material generation, difficulty in disassembling conveyor belts and loose chains are solved, efficient slicing and stable transmission are achieved, and the quality and safety of slices are improved.

CN120533767APending Publication Date: 2025-08-26SHANDONG ZIYAN FOOD CO LTD
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Patent Information

Application Number
CN202510980672.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-16
Publication Date
2025-08-26

AI Technical Summary

Technical Problem

Existing small slicers produce tail materials when slicing, and the difficulty in dismantling the conveyor belt leads to incomplete cleaning of oil stains. The chain is not tightened and the design affects the transmission effect, which poses food safety risks.

Method used

The clamping transportation mechanism, transmission mechanism, tensioning mechanism and quick disassembly mechanism are designed to ensure stable material transportation and reduce the production of tail material, realize rapid replacement of conveyor belts and adjustment of chain tension, and prevent loosening.

Benefits of technology

It improves the quality and efficiency of slices, reduces food safety risks, and ensures long-term and stable operation of the transmission mechanism.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a portable small slicing machine, and relates to the field of material slicing, the portable small slicing machine comprises a mounting seat, a motor protective cover is fixed on the mounting seat, a first motor and a second motor are arranged in the motor protective cover, the first motor and the second motor are vertically arranged, a supporting plate is further fixed on the mounting seat, and a clamping and conveying mechanism is arranged on one side of the supporting plate; a transmission mechanism is arranged on the other side of the supporting plate, a tensioning mechanism is arranged on the supporting plate, a blade protective cover is fixed to one side of the mounting base, and a cutter disc linkage mechanism is arranged in the blade protective cover. The power of the first motor is transmitted to the clamping and conveying mechanism through the transmission mechanism, so that materials are stably conveyed to the feeding opening through the clamping and conveying mechanism; the conveying belt is quickly replaced through the quick release mechanism, so that oil stains on the conveying belt can be thoroughly cleaned; the tension of the chain is automatically adjusted through the tensioning mechanism; and the cutter disc linkage mechanism further reduces generation of slicing tailings, and the slicing quality of the materials is improved.
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Description

Technical Field

[0001] The present application relates to the field of material slicing, and in particular to a portable small-sized slicer. Background Art

[0002] Slicing operations are increasingly common in many fields, including modern food processing and laboratory research. Mini slicers, with their compact size, facilitate flexible installation within limited spaces, significantly improving space utilization and adapting to diverse work environments. In recent years, with growing market demand for smaller, more convenient equipment, mini slicers have seen rapid growth, attracting the attention and investment of numerous exhibitors, driving technological innovation across the industry and providing strong support for efficient operations in related fields.

[0003] However, existing small slicers have numerous drawbacks. They produce scraps during slicing, requiring manual processing, which severely impacts slice quality and efficiency. Furthermore, conveyor belts are difficult to disassemble, resulting in incomplete cleaning of oil stains and food safety concerns. Furthermore, the power transmission chain lacks a tensioning design, which can lead to chain loosening over extended use, compromising transmission efficiency. Summary of the Invention

[0004] In order to improve the problems of existing slicers producing tailings during slicing, which affects the quality of slices; the conveyor belt is difficult to disassemble, resulting in incomplete cleaning of oil stains; and the chain used to transmit power has no tensioning design, the present application provides a portable small slicer.

[0005] The portable small slicer provided in this application adopts the following technical solution: A portable small slicer includes a mounting base, a motor guard is fixed on the mounting base, a first motor and a second motor are arranged in the motor guard, the first motor and the second motor are arranged vertically, a support plate is also fixed on the mounting base, a clamping and transporting mechanism for conveying materials is provided on one side of the support plate, a transmission mechanism for transmitting the power of the first motor to the clamping and transporting mechanism is provided on the other side of the support plate, a tensioning mechanism for adjusting the tensioning force of the transmission mechanism is provided on the support plate, a blade guard is fixed on one side of the mounting base, a knife disc linkage mechanism for slicing materials is provided in the blade guard, and the knife disc linkage mechanism is fixed on the output end of the second motor.

[0006] By adopting the above technical solution, the clamping and conveying mechanism is used to clamp and convey the material, ensuring that the material reaches the slicing position accurately. The transmission mechanism transmits the power of the first motor to ensure the normal operation of the clamping and conveying mechanism. The tensioning mechanism is used to adjust the tension of the transmission mechanism to prevent the transmission mechanism from loosening after long-term use, thereby affecting the transmission effect. The second motor is used to drive the cutter disc linkage mechanism to slice the delivered material, greatly reducing the generation of material waste. The blade guard is used to protect the cutter disc linkage mechanism and prevent the cutter disc linkage mechanism from causing accidental injury to the user.

[0007] Preferably, the clamping and transporting mechanism includes two groups of conveying mechanisms, and the two groups of conveying mechanisms are arranged at an angle, wherein one group of the conveying mechanisms is installed on the support plate along the length direction of the support plate, and a limiting groove is provided on the top of the support plate. A first receiving plate is provided on the side of the support plate close to the second motor, and the first receiving plate passes through the limiting groove and rotates on the support plate, and the other group of the conveying mechanisms is installed on the first receiving plate.

[0008] By adopting the above technical solution, two sets of conveying mechanisms arranged at an angle can achieve gripping and transportation of materials. This unique angle design allows the material to be subjected to forces from two directions during the conveying process, ensuring that the material is stably conveyed to the cutter disc linkage mechanism for slicing, effectively preventing the material from shifting or falling during transportation, thereby improving the accuracy and stability of slicing, and thus improving slicing quality and slicing efficiency.

[0009] Preferably, the conveying mechanism includes a driving roller, a driven roller, a conveyor belt, and a support platform, the conveyor belt is used to connect the driving roller and the driven roller, the support platform is arranged on the inner side of the conveyor belt, one of the support platforms is fixed on the support plate, and the other support platform is fixed on the first receiving plate, one group of the driving rollers and the driven rollers pass through the support platform and rotate on the support plate, another group of the driving rollers pass through the support platform and rotate on the first receiving plate, and another group of the driven rollers rotate on the inner side of the support platform close to it, and a quick-release mechanism for quickly replacing the conveyor belt is also provided on the support platform.

[0010] By employing this technical solution, the active and driven rollers drive the conveyor belt to transport materials, achieving material conveying functionality. During transport, the material itself exerts an upward compressive force on the conveyor mechanism mounted on the first receiving plate, causing it to rotate around the first receiving plate. This design enables the gripping and conveying mechanism to grip and transport materials of varying sizes. Furthermore, the quick-release mechanism allows for rapid replacement of the conveyor belt, resolving the challenges of difficult conveyor belt removal and incomplete oil removal in existing slicer conveyor belts.

[0011] Preferably, the quick-release mechanism includes a rotating handle threadedly connected to the support platform, a connecting frame fixed to the rotating handle, and a tensioning roller rotating on the connecting frame, wherein the tensioning roller is in rolling contact with the conveyor belt.

[0012] By adopting this technical solution, the threaded handle rotates so that the tensioning roller no longer contacts the conveyor belt, losing its rolling contact with the belt and causing the belt to become excessively loose, making it easy to remove. To install the conveyor belt, simply rotate the handle in the opposite direction to bring the tensioning roller into rolling contact with the conveyor belt, thus ensuring normal operation. The quick-release mechanism allows for rapid replacement of the conveyor belt, facilitating thorough cleaning of oil stains and preventing food safety issues.

[0013] Preferably, the transmission mechanism includes a first driving gear fixed on the output end of the first motor, a second driving gear fixed on the output end of the first motor, a first driven gear fixed on the driving roller away from the first motor, a second driven gear fixed on the driving roller close to the first motor, a chain meshingly connected to the first driving gear and the first driven gear, and the second driving gear meshingly connected to the second driven gear.

[0014] By adopting this technical solution, the first driving gear, meshing with the chain, transmits the power of the first motor to the first driven gear. The second driving gear, meshing with the second driven gear, transmits the power of the first motor to the second driven gear. The transmission mechanism enables the first motor to drive the two conveying mechanisms to operate synchronously, thereby gripping and transporting the material and delivering it to the feed port, facilitating slicing by the cutterhead linkage.

[0015] Preferably, the tensioning mechanism includes a second receiving plate rotating on the side of the support plate close to the first motor, a tensioning gear rotating on the second receiving plate, a fixed plate fixed on the support plate, and a tensioning spring arranged between the second receiving plate and the fixed plate, the tensioning gear is arranged inside the chain and meshed with the chain, one end of the tensioning spring is hung on the second receiving plate, and the other end of the tensioning spring is hung on the fixed plate.

[0016] By adopting the above technical solution, the tensioning spring is arranged between the second receiving plate and the fixed plate, the tensioning gear rotates on the second receiving plate and engages with the chain, and the elastic force of the tensioning spring is used to adjust the tension of the chain to prevent the chain from loosening during long-term use of the slicer, thereby ensuring the transmission effect.

[0017] Preferably, a first rod and a second rod are fixed on the fixed plate, a rotating plate is rotatably provided on the first rod, an arc groove is provided on the rotating plate, and the arc groove is slidably connected to the second rod, a connecting block is fixed to the side of the blade guard close to the first motor, a first spring is provided between the first receiving plate and the connecting block, a second spring is provided between the first receiving plate and the rotating plate, one end of the first spring is hung on the first receiving plate, and the other end of the first spring is hung on the connecting block, one end of the second spring is hung on the first receiving plate, and the other end of the second spring is hung on the rotating plate.

[0018] By adopting the above technical solution, when materials are clamped and transported, the upward pressure exerted by the materials on the conveying mechanism mounted on the first receiving plate causes the conveying mechanism to rotate around the first receiving plate toward the first driving gear, thereby stretching the first and second springs. When the pressure disappears, the return action of the first and second springs pulls the first receiving plate away from the first driving gear, driving the first receiving plate back to its original position.

[0019] Preferably, the cutter disc linkage mechanism includes a blade mounting plate fixed on the output end of the second motor, a plurality of blade bodies fixed on the blade mounting plate, a material blocking disc fixed on the blade mounting plate, and a plurality of blade slots opened on the material blocking disc and used in conjunction with the blade bodies. The plurality of blade bodies are evenly spaced around the circumferential direction of the blade mounting plate, and the number of the blade bodies is consistent with the number of the blade slots.

[0020] By adopting this technical solution, multiple blade bodies are evenly spaced around the circumference and rotate in conjunction with the second motor output, efficiently slicing the material. The retaining disc is provided with blade slots that mate with the blade bodies, enabling the cutter disc linkage to cut the material in all directions, reducing the generation of waste. This also prevents material splashing, ensuring the safety and stability of the slicing operation and addressing the problem of incomplete slicing in existing slicers, resulting in a large amount of waste.

[0021] Preferably, a feed port is provided on a side of the blade guard cover close to the clamping and transporting mechanism, and a discharge port is provided at the bottom of the blade guard cover.

[0022] By adopting the above technical solution, the clamping and transporting mechanism clamps and transports the material to the feed port, and under the action of the cutter disc linkage mechanism, the material is sliced, and the sliced ​​material is discharged from the discharge port.

[0023] Preferably, a guard plate is provided on a side of the clamping and transporting mechanism away from the support plate, and the guard plate is fixed to the blade guard cover and the support platform close to the first motor respectively through two knobs.

[0024] By adopting the above technical solution, the guard plate protects the conveyor belt of the conveyor mechanism, preventing the conveyor belt from being disturbed or damaged by external factors. The guard plate is fixed to the support platform and the blade guard respectively using two knobs, making it removable and easy to install for subsequent maintenance and replacement.

[0025] Preferably, a reducer is embedded in the motor protective cover, and the reducer is electrically connected to the first motor and the second motor respectively.

[0026] By adopting the above technical solution, a reducer electrically connected to the first and second motors is embedded in the motor shield. This allows the rotational speeds of the first and second motors to be adjusted, thereby adjusting the material conveying speed of the clamping and conveying mechanism and the slicing speed of the cutter disc linkage mechanism. This allows the material to be sliced ​​to different thicknesses, effectively completing the material slicing operation.

[0027] In summary, this application includes at least one of the following beneficial technical effects: 1. The power of the first motor is transmitted to the clamping and transporting mechanism through the transmission mechanism, which stably transports the material to the cutting port; the second motor drives the cutter disc linkage mechanism to operate, thereby slicing the material. The clamping and transporting mechanism cooperates with the cutter disc linkage mechanism to effectively transport and slice the material, reduce the generation of waste materials during slicing, and improve the slicing quality and efficiency. 2. By setting the tensioning mechanism, the tension of the chain can be adjusted to avoid the transmission effect affected by the loose chain, thus ensuring the long-term stable transmission performance of the slicer; 3. A quick-release mechanism is set on the conveying mechanism, which can quickly replace the conveyor belt, making it easier to disassemble the conveyor belt, facilitate thorough cleaning of oil stains, and reduce the probability of food safety problems. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0029] Figure 1 This is an overall schematic diagram of the slicer provided in an embodiment of the present application; Figure 2 This is a schematic diagram of the internal structure of the electrical appliance protective cover provided in an embodiment of the present application; Figure 3 It is a structural schematic diagram of the conveying mechanism provided in an embodiment of the present application; Figure 4 This is a schematic structural diagram of the quick-release mechanism provided in an embodiment of the present application; Figure 5 It is a structural schematic diagram of the transmission mechanism provided in an embodiment of the present application; Figure 6 This is a partial structural diagram of the transmission mechanism provided in an embodiment of the present application, used to illustrate the second receiving plate and the tensioning gear; Figure 7 This embodiment of the present application provides Figure 6 Enlarged view of point A in the middle; Figure 8 It is an overall schematic diagram of the cutter disc linkage mechanism provided in the embodiment of the present application; Figure 9 This is a disassembled diagram of the cutter disc linkage mechanism provided in an embodiment of the present application.

[0030] Figure numerals: 1, mounting base; 2, motor protective cover; 3, first motor; 4, second motor; 5, support plate; 6, conveying mechanism; 61, driving roller; 62, driven roller; 63, conveyor belt; 64, support platform; 65, quick release mechanism; 651, rotating handle; 652, connecting frame; 653, tensioning roller; 7, transmission mechanism; 71, first driving gear; 72, second driving gear; 73, first driven gear; 74, second driven gear; 75, chain; 8, tensioning mechanism; 81, first Second receiving plate; 82, tensioning gear; 83, fixing plate; 84, tensioning spring; 9, blade guard; 10, cutter disc linkage mechanism; 101, blade mounting plate; 102, blade body; 103, material blocking disc; 104, blade slot; 11, limiting slot; 12, first receiving plate; 13, first rod; 14, second rod; 15, rotating plate; 16, arc slot; 17, connecting block; 18, first spring; 19, second spring; 20, feed port; 21, discharge port; 22, guard plate; 23, speed reducer. DETAILED DESCRIPTION

[0031] The following is combined with Figure 1-9 This application is described in further detail.

[0032] The embodiment of the present application discloses a portable small slicer.

[0033] Reference Figure 1 A portable small slicer includes a mounting base 1 and a blade guard 9. The blade guard 9 is fixed to the side wall of the mounting base 1, and the mounting base 1 serves as the installation and support base for the entire slicer. A motor guard 2 is fixed to the mounting base 1, and a clamping and transporting mechanism for conveying materials is provided on one side of the blade guard 9.

[0034] Reference Figure 1A guard plate 22 is installed on the side of the blade guard 9 near the clamping and transporting mechanism. This guard plate 22 primarily protects the user, preventing accidental injury during operation of the clamping and transporting mechanism. A speed reducer 23 is embedded in the motor guard 2 to regulate the rotational speed of the power source.

[0035] Reference Figure 2 A support plate 5 is fixed in the middle of the mounting base 1, a first motor 3 is fixed on the mounting base 1, and a second motor 4 is fixed on the blade guard 9, and the first motor 3 and the second motor 4 are arranged vertically. A transmission mechanism 7 is provided between the first motor 3 and the clamping and transporting mechanism for transmitting the power of the first motor 3 to the clamping and transporting mechanism, thereby driving the clamping and transporting mechanism to work and transport the material to the position to be cut. A tensioning mechanism 8 is also provided on one side of the transmission mechanism 7 for automatically adjusting the tensioning force of the transmission mechanism 7. A cutter disc linkage mechanism 10 for reducing slicing tailings is provided inside the blade guard 9, and the cutter disc linkage mechanism 10 is fixed to the output end of the second motor 4. The second motor 4 provides power to the cutter disc linkage mechanism 10, thereby completing the cutting of the material.

[0036] In addition, the reducer 23 is electrically connected to the first motor 3 and the second motor 4 respectively. By controlling the reducer 23, the speed of the first motor 3 and the speed of the second motor 4 are changed respectively, thereby changing the speed at which the clamping and transporting mechanism transports materials and changing the speed at which the cutter disc linkage mechanism 10 cuts materials.

[0037] Reference Figure 3 A feed port 20 is provided on the side of the blade guard 9 near the clamping and transporting mechanism, and a discharge port 21 is provided at the bottom of the blade guard 9. The clamping and transporting mechanism transports the material to the feed port 20, and under the action of the cutter disc linkage mechanism 10, the material is sliced, and the cut material is smoothly discharged from the discharge port 21.

[0038] Reference Figure 3 A limiting slot 11 is provided on the top of the support plate 5. A first receiving plate 12 is rotatably mounted on the side of the support plate 5 close to the first motor 3. The first receiving plate 12 passes through the limiting slot 11 and rotates on the support plate 5. In addition, the limiting slot 11 can limit the rotation trajectory of the first receiving plate 12 to prevent excessive deflection of the first receiving plate 12.

[0039] Reference Figure 3The clamping and transporting mechanism includes two groups of conveying mechanisms 6, which are arranged at an angle. The conveying mechanisms 6 arranged at this angle can better clamp and transport the material, allowing the material to move stably toward the feed port 20. One group of conveying mechanisms 6 is fixed to the support plate 5 along the length direction of the support plate 5, and is used to carry and transport the material. The other group of conveying mechanisms 6 is installed on the first receiving plate 12. When the material is large, the conveying mechanism 6 of this group is subjected to the upward squeezing force of the material, so that the conveying mechanism 6 of this group can rotate synchronously with the first receiving plate 12, changing the angle between the two groups of conveying mechanisms 6, thereby realizing the clamping and conveying of materials of different sizes.

[0040] Reference Figure 3 The conveying mechanism 6 includes a driving roller 61, a driven roller 62, a conveyor belt 63, and a support platform 64. The conveyor belt 63 is used to connect the driving roller 61 and the driven roller 62, and the support platform 64 is arranged on the inner side of the conveyor belt 63. One of the support platforms 64 is fixed on the support plate 5, and the other support platform 64 is fixed on the first receiving plate 12. One group of driving rollers 61 and driven rollers 62 both pass through the support platform 64 and rotate on the support plate 5. The driving roller 61 of the other group passes through the support platform 64 and rotates on the first receiving plate 12, and the driven roller 62 rotates on the inner side of the support platform 64 close to it. In addition, the driving roller 61 and the driven roller 62 are preferably nylon rollers to increase the friction with the conveyor belt 63.

[0041] Reference Figure 3 and Figure 4 A quick-release mechanism 65 is also provided on the support platform 64. The quick-release mechanism 65 includes a rotating handle 651 threadedly connected to the support platform 64, a connecting frame 652 fixed to the rotating handle 651, and a tensioning roller 653 rotating on the connecting frame 652. The tensioning roller 653 is in rolling contact with the conveyor belt 63. Under the action of the thread, rotating the rotating handle 651 causes the tensioning roller 653 to no longer contact the conveyor belt 63, losing its rolling contact with the conveyor belt 63, thereby causing the conveyor belt 63 to be excessively loose, thereby allowing the conveyor belt 63 to be easily removed. When the conveyor belt 63 needs to be installed, the rotating handle 651 is simply rotated in the opposite direction to cause the tensioning roller 653 to achieve rolling contact with the conveyor belt 63, thereby allowing the conveyor belt 63 to operate normally. The quick-release mechanism 65 enables the rapid replacement of the conveyor belt 63, facilitates the thorough cleaning of oil stains on the conveyor belt 63, and avoids food safety issues.

[0042] Reference Figure 5 and Figure 6The transmission mechanism 7 includes a first driving gear 71, a second driving gear 72, a first driven gear 73, a second driven gear 74, and a chain 75. The first driving gear 71 and the second driving gear 72 are both fixed to the output end of the first motor 3, so that starting the first motor 3 can drive the first driving gear 71 and the second driving gear 72 to rotate synchronously. The first driven gear 73 is fixed to the driving roller 61 away from the first motor 3, and the second driven gear 74 is fixed to the driving roller 61 close to the first motor 3. The chain 75 is meshed with the first driving gear 71 and the first driven gear 73, and the second driving gear 72 is meshed with the second driven gear 74.

[0043] Start the first motor 3, and the first driving gear 71 and the second driving gear 72 are driven by the first motor 3 to rotate. The power of the first driving gear 71 is transmitted to the first driven roller 62 through the chain 75, and the first driven gear 73 is fixed to the driving roller 61 away from the first motor 3, thereby providing power to a group of conveying mechanisms 6 installed on the first receiving plate 12 to enable them to work normally. Through the meshing action of the second driving gear 72 and the second driven gear 74, and the second driven gear 74 is fixed on the driving roller 61 close to the first motor 3, power is provided to a group of conveying mechanisms 6 installed on the support plate 5 to enable them to work normally. Under the action of the transmission mechanism 7, the two groups of conveying mechanisms 6 can be operated simultaneously by the first motor 3 to realize the clamping and transportation of materials. This can not only improve the utilization rate of power, but also reduce the cost of the device.

[0044] Reference Figure 7 The tensioning mechanism 8 includes a second receiving plate 81, a tensioning gear 82, a fixed plate 83, and a tensioning spring 84. The second receiving plate 81 rotates on the support plate 5, the tensioning gear 82 rotates on the second receiving plate 81, the fixed plate 83 is fixed to the support plate 5, and the tensioning gear 82 is disposed within and meshed with the chain 75. One end of the tensioning spring 84 is mounted on the second receiving plate 81, and the other end is mounted on the fixed plate 83.

[0045] Reference Figure 7 A first rod 13 and a second rod 14 are fixed on the fixed plate 83, and a rotating plate 15 is rotated on the first rod 13, and an arc-shaped groove 16 is provided on the rotating plate 15, and the arc-shaped groove 16 is slidably connected to the second rod 14. In addition, a connecting block 17 is fixed on the side of the blade guard 9 close to the first motor 3. A first spring 18 is provided between the first receiving plate 12 and the connecting block 17, and a second spring 19 is provided between the first receiving plate 12 and the rotating plate 15. Among them, one end of the first spring 18 is hung on the first receiving plate 12, and the other end of the first spring 18 is hung on the connecting block 17. One end of the second spring 19 is hung on the first receiving plate 12, and the other end of the second spring 19 is hung on the rotating plate 15.

[0046] Reference Figure 6 and Figure 7 The material exerts an upward pressure on the conveying mechanism 6 mounted on the first receiving plate 12, causing the first receiving plate 12 to rotate toward the first driving gear 71. The chain 75 pushes the second receiving plate 81 toward the first driving gear 71, stretching the third spring. The return action of the third spring pulls the second receiving plate 81 toward the fixed plate 83, ensuring that the tensioning gear 82 and chain 75 are always engaged, adjusting the tension of the chain 75 and facilitating its transmission. Furthermore, when the first receiving plate 12 rotates toward the first driving gear 71, not only does it stretch the first and second springs 18 and 19, but it also causes the rotating plate 15 to rotate around the first post, restrained by the second post and arcuate slot 16, toward the first receiving plate 12.

[0047] Reference Figure 6 and Figure 7 As the material is sliced, the extrusion force acting on the first receiving plate 12 disappears. Under the reset action of the first spring 18 and the second spring 19, the first receiving plate 12 is driven to rotate away from the first driving gear 71 and return to its original position. The reset action of the tensioning spring 84 pulls the second receiving plate 81 away from the first driving gear 71, so that the tensioning gear 82 and the chain 75 are always engaged, achieving tension adjustment of the chain 75 and cooperating with the transmission of the chain 75. The second spring 19 also pushes the rotating plate 15 to rotate around the first column away from the first driving gear 71 under the constraints of the second column and the arc-shaped groove 16, thereby returning the rotating plate 15 to its original position.

[0048] Reference Figure 8 and Figure 9 The cutter disc linkage mechanism 10 includes a blade mounting disc 101, a blade body 102, a material-blocking disc 103, and a blade slot 104. The blade mounting disc 101 is fixed to the output end of the second motor 4, the blade body 102 is fixed to the blade mounting disc 101, and the blade slot 104 is provided on the material-blocking disc 103. There are multiple blade bodies 102, and the multiple blade bodies 102 are evenly spaced around the circumference of the blade mounting disc 101. The shape of the blade slot 104 is consistent with that of the blade body 102. The blade slot 104 is used in conjunction with the blade body 102, and the number of the blade slots 104 is consistent with the number of the blade bodies 102.

[0049] Activating the second motor 4 to drive the blade disc linkage 10 to cut the material can reduce the generation of material scraps and improve the quality of the slices. First, the material retaining disc 103 uses the blade slot 104 to limit the blade trajectory, confining the material to the cutting area and preventing the end of the material from escaping and forming scraps. Second, the multiple blade bodies 102 are evenly distributed and rotate in relays, ensuring seamless cutting action and continuous severing of the material, reducing residue.

[0050] The implementation principle of a portable small slicer in an embodiment of the present application is: the power of the first motor 3 is synchronously transmitted to the two groups of conveying mechanisms 6 through the transmission mechanism 7, so that the two groups of conveying mechanisms 6 can operate normally; in addition, the two groups of conveying mechanisms 6 are arranged at an angle, which can clamp and transport the material and stably convey the material to the feed port 20; by setting a quick-release mechanism 65, it is convenient to quickly replace the conveyor belt 63, and to thoroughly clean the oil stains on the conveyor belt 63 to avoid food safety problems; the tension of the chain 75 is adjusted by the tensioning mechanism 8, and the transmission of the chain 75 is coordinated; the slicing of the material is achieved under the action of the second motor 4 and the cutter disc linkage mechanism 10; the cutter disc linkage mechanism 10 can also reduce the generation of material tailings and improve the slicing quality of the material.

[0051] Unless otherwise defined, the technical or scientific terms used in this application shall have the usual meanings understood by persons of ordinary skill in the field to which this application belongs. The words "first", "second", "third" and similar terms used in the specification and claims of this application do not indicate any order, quantity or importance, but are only used to distinguish different components. Words such as "one" or "a" do not indicate a quantity limitation, but rather indicate the existence of at least one. Words such as "include" or "comprise" mean that the elements or objects appearing before "include" or "comprises" cover the elements or objects listed after "include" or "comprises" and their equivalents, and do not exclude other elements or objects. "Up", "down", "left", "right" and the like are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0052] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A portable small slicer, characterized by: The invention comprises a mounting seat (1), a motor protective cover (2) is fixed on the mounting seat (1), a first motor (3) and a second motor (4) are arranged in the motor protective cover (2), the first motor (3) and the second motor (4) are arranged vertically, a support plate (5) is also fixed on the mounting seat (1), a clamping and transporting mechanism for conveying materials is arranged on one side of the support plate (5), a transmission mechanism (7) for transmitting power of the first motor (3) to the clamping and transporting mechanism is arranged on the other side of the support plate (5), a tensioning mechanism (8) for adjusting the tensioning force of the transmission mechanism (7) is arranged on the support plate (5), a blade protective cover (9) is fixed on one side of the mounting seat (1), a knife disc linkage mechanism (10) for slicing materials is arranged in the blade protective cover (9), and the knife disc linkage mechanism (10) is fixed on the output end of the second motor (4).

2. The portable small slicer according to claim 1, characterized in that: The clamping and transporting mechanism comprises two groups of conveying mechanisms (6), which are arranged at an angle. One group of the conveying mechanisms (6) is installed on the support plate (5) along the length direction of the support plate (5), a limiting groove (11) is provided on the top of the support plate (5), and a first receiving plate (12) is provided on the side of the support plate (5) close to the second motor (4). The first receiving plate (12) passes through the limiting groove (11) and rotates on the support plate (5), and the other group of the conveying mechanisms (6) is installed on the first receiving plate (12).

3. The portable small slicer according to claim 2, characterized in that: The conveying mechanism (6) comprises a driving roller (61), a driven roller (62), a conveyor belt (63), and a support platform (64). The conveyor belt (63) is used to connect the driving roller (61) and the driven roller (62). The support platform (64) is arranged on the inner side of the conveyor belt (63). One of the support platforms (64) is fixed on the support plate (5), and the other support platform (64) is fixed on the first receiving plate (12). One group of the driving rollers (61) and the driven rollers (62) both pass through the support platform (64) and rotate on the support plate (5). Another group of the driving rollers (61) pass through the support platform (64) and rotate on the first receiving plate (12). Another group of the driven rollers (62) rotates on the inner side of the support platform (64) close to it. The support platform (64) is also provided with a quick-release mechanism (65) for quickly replacing the conveyor belt (63).

4. The portable small slicer according to claim 3, characterized in that: The quick-release mechanism (65) comprises a rotating handle (651) threadedly connected to the support platform (64), a connecting frame (652) fixed to the rotating handle (651), and a tensioning roller (653) rotating on the connecting frame (652), wherein the tensioning roller (653) is in rolling contact with the conveyor belt (63).

5. The portable small slicer according to claim 3, characterized in that: The transmission mechanism (7) comprises a first driving gear (71) fixed on the output end of the first motor (3), a second driving gear (72) fixed on the output end of the first motor (3), a first driven gear (73) fixed on the driving roller (61) away from the first motor (3), a second driven gear (74) fixed on the driving roller (61) close to the first motor (3), and a chain (75) meshingly connected with the first driving gear (71) and the first driven gear (73); the second driving gear (72) is meshingly connected with the second driven gear (74).

6. The portable small slicer according to claim 5, characterized in that: The tensioning mechanism (8) comprises a second receiving plate (81) rotating on a side of the support plate (5) close to the first motor (3), a tensioning gear (82) rotating on the second receiving plate (81), a fixing plate (83) fixed on the support plate (5), and a tensioning spring (84) arranged between the second receiving plate (81) and the fixing plate (83); the tensioning gear (82) is arranged inside the chain (75) and meshed with the chain (75); one end of the tensioning spring (84) is hung on the second receiving plate (81), and the other end of the tensioning spring (84) is hung on the fixing plate (83).

7. The portable small slicer according to claim 6, characterized in that: A first rod (13) and a second rod (14) are fixed on the fixed plate (83); a rotating plate (15) is rotatably provided on the first rod (13); an arc groove (16) is provided on the rotating plate (15); the arc groove (16) is slidably connected to the second rod (14); a connecting block (17) is fixed on the side of the blade guard (9) close to the first motor (3); a first spring (18) is provided between the first receiving plate (12) and the connecting block (17); a second spring (19) is provided between the first receiving plate (12) and the rotating plate (15); one end of the first spring (18) is hung on the first receiving plate (12), and the other end of the first spring (18) is hung on the connecting block (17); one end of the second spring (19) is hung on the first receiving plate (12), and the other end of the second spring (19) is hung on the rotating plate (15).

8. The portable small slicer according to claim 1, characterized in that: The cutter disc linkage mechanism (10) comprises a blade mounting disc (101) fixed on the output end of the second motor (4), a plurality of blade bodies (102) fixed on the blade mounting disc (101), a material blocking disc (103) fixed on the blade mounting disc (101), and a plurality of blade slots (104) provided on the material blocking disc (103) and used in conjunction with the blade bodies (102). The plurality of blade bodies (102) are evenly spaced around the circumferential direction of the blade mounting disc (101), and the number of the blade bodies (102) is the same as the number of the blade slots (104).

9. The portable small slicer according to claim 1, characterized in that: A feed port (20) is provided on one side of the blade guard cover (9) close to the clamping and transporting mechanism, and a discharge port (21) is provided at the bottom of the blade guard cover (9).

10. The portable small slicer according to claim 1, characterized in that: A guard plate (22) is provided on the side of the clamping and transporting mechanism away from the support plate (5), and the guard plate (22) is fixed to the blade guard (9) and the support platform (64) close to the first motor (3) through two knobs.

11. The portable small slicer according to claim 1, characterized in that: A reducer (23) is embedded in the motor protective cover (2), and the reducer (23) is electrically connected to the first motor (3) and the second motor (4) respectively.